Long-Term Degradation of Optical Performance in Smartphone Camera Modules: Mechanisms and Mitigation Strategies

Smartphone camera modules achieve diffraction-limited or near diffraction-limited imaging performance at the time of manufacture, relying on sub-micron alignment between multiple lens elements, the image sensor, and compact electromechanical actuators. Users routinely observe, however, that image quality — sharpness, contrast, and low-light performance — declines measurably over a device's typical two-to-five-year service life, independent of software changes. This review examines four physical degradation mechanisms responsible for this decline: (i) creep and fatigue of the adhesive bonds that maintain lens-to-sensor alignment under repeated thermal cycling; (ii) mechanical wear in voice coil motor (VCM) actuators used for autofocus and optical image stabilization; (iii) ingress of particulate matter and moisture through imperfect module seals; and (iv) abrasion of thin-film anti-reflective coatings on the protective cover lens. Each mechanism is discussed with reference to its underlying physics, its measurable effect on standard image-quality metrics such as the modulation transfer function (MTF), and practical mitigation strategies available to end users and manufacturers.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-26
DOI
https://doi.org/10.5281/zenodo.22980488
Primary Topic
Optical measurement and interference techniques
Type
preprint
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preprint

Long-Term Degradation of Optical Performance in Smartphone Camera Modules: Mechanisms and Mitigation Strategies

Fatemeh Khodakhah
Zenodo (CERN European Organization for Nuclear Research)
Optical measurement and interference techniques
preprint

Long-Term Degradation of Optical Performance in Smartphone Camera Modules: Mechanisms and Mitigation Strategies

Fatemeh Khodakhah
preprint en

Abstract

Smartphone camera modules achieve diffraction-limited or near diffraction-limited imaging performance at the time of manufacture, relying on sub-micron alignment between multiple lens elements, the image sensor, and compact electromechanical actuators. Users routinely observe, however, that image quality — sharpness, contrast, and low-light performance — declines measurably over a device's typical two-to-five-year service life, independent of software changes. This review examines four physical degradation mechanisms responsible for this decline: (i) creep and fatigue of the adhesive bonds that maintain lens-to-sensor alignment under repeated thermal cycling; (ii) mechanical wear in voice coil motor (VCM) actuators used for autofocus and optical image stabilization; (iii) ingress of particulate matter and moisture through imperfect module seals; and (iv) abrasion of thin-film anti-reflective coatings on the protective cover lens. Each mechanism is discussed with reference to its underlying physics, its measurable effect on standard image-quality metrics such as the modulation transfer function (MTF), and practical mitigation strategies available to end users and manufacturers.

Zenodo (CERN European Organization for Nuclear Research)
University of Guilan (IR)
Optical measurement and interference techniques
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